Description

Book Synopsis
The current research and development in intelligent control and information processing have been driven increasingly by advancements made from fields outside the traditional control areas, into new frontiers of intelligent control and information processing so as to deal with ever more complex systems with ever growing size of data and complexity.As researches in intelligent control and information processing are taking on ever more complex problems, the control system as a nuclear to coordinate the activity within a system increasingly need to be equipped with the capability to analyze, and reason so as to make decision. This requires the support of cognitive components, and communication protocol to synchronize events within the system to operate in unison.In this review volume, we invited several well-known experts and active researchers from adaptive/approximate dynamic programming, reinforcement learning, machine learning, neural optimal control, networked systems, and cyber-physical systems, online concept drift detection, pattern recognition, to contribute their most recent achievements into the development of intelligent control systems, to share with the readers, how these inclusions helps to enhance the cognitive capability of future control systems in handling complex problems.This review volume encapsulates the state-of-art pioneering works in the development of intelligent control systems. Proposition and evocations of each solution is backed up with evidences from applications, could be used as references for the consideration of decision support and communication components required for today intelligent control systems.

Table of Contents
Dynamic Graphical Games: Online Adaptive Learning Solutions Using Approximate Dynamic Programming; Online Learning Control for Discrete-Time Unknown Nonaffine Nonlinear Systems; Experimental Studies on Data-Driven Heuristic Dynamic Programming for POMDP; Online Reinforcement Learning for Continuous-State Systems; Adaptive Iterative Learning Control of Robot Manipulators; Neural Network Control of Nonlinear Systems in the Presence of Communication Network; Nonlinear and Robust Model Predictive Control Based on Neurodynamic Optimization; Packet-based Communication and Control Co-Design for Networked Control Systems; Review of Some Approximate Privacy Measures of Multi-Agent Communication Protocols; Encoding-Decoding Machines for Online Concept-Drift Detection on Datastreams; Recognizing sEMG Patterns for Interacting with Prosthetic Manipulation; Energy Demand Management Through Uncertain Data Forecasting: A Hybrid Approach; Many-Objective Evolutionary Algorithms and Hybrid Performance Metrics; Synchronization Control of Memristive Chaotic Circuits and Their Applications; Graph Embedded Total Margin Twin Support Vector Machine and Its Applications; Regularized Covariance Matrix Estimation Based on MDL Principle; An Evolution of Evolutionary Algorithms with Big Data;

Frontiers Of Intelligent Control And Information

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    Order before 4pm tomorrow for delivery by Sat 20 Jun 2026.

    A Hardback by Derong Liu, Cesare Alippi, Dongbin Zhao

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      View other formats and editions of Frontiers Of Intelligent Control And Information by Derong Liu

      Publisher: World Scientific Publishing Co Pte Ltd
      Publication Date: 13/10/2014
      ISBN13: 9789814616874, 978-9814616874
      ISBN10: 9814616877

      Description

      Book Synopsis
      The current research and development in intelligent control and information processing have been driven increasingly by advancements made from fields outside the traditional control areas, into new frontiers of intelligent control and information processing so as to deal with ever more complex systems with ever growing size of data and complexity.As researches in intelligent control and information processing are taking on ever more complex problems, the control system as a nuclear to coordinate the activity within a system increasingly need to be equipped with the capability to analyze, and reason so as to make decision. This requires the support of cognitive components, and communication protocol to synchronize events within the system to operate in unison.In this review volume, we invited several well-known experts and active researchers from adaptive/approximate dynamic programming, reinforcement learning, machine learning, neural optimal control, networked systems, and cyber-physical systems, online concept drift detection, pattern recognition, to contribute their most recent achievements into the development of intelligent control systems, to share with the readers, how these inclusions helps to enhance the cognitive capability of future control systems in handling complex problems.This review volume encapsulates the state-of-art pioneering works in the development of intelligent control systems. Proposition and evocations of each solution is backed up with evidences from applications, could be used as references for the consideration of decision support and communication components required for today intelligent control systems.

      Table of Contents
      Dynamic Graphical Games: Online Adaptive Learning Solutions Using Approximate Dynamic Programming; Online Learning Control for Discrete-Time Unknown Nonaffine Nonlinear Systems; Experimental Studies on Data-Driven Heuristic Dynamic Programming for POMDP; Online Reinforcement Learning for Continuous-State Systems; Adaptive Iterative Learning Control of Robot Manipulators; Neural Network Control of Nonlinear Systems in the Presence of Communication Network; Nonlinear and Robust Model Predictive Control Based on Neurodynamic Optimization; Packet-based Communication and Control Co-Design for Networked Control Systems; Review of Some Approximate Privacy Measures of Multi-Agent Communication Protocols; Encoding-Decoding Machines for Online Concept-Drift Detection on Datastreams; Recognizing sEMG Patterns for Interacting with Prosthetic Manipulation; Energy Demand Management Through Uncertain Data Forecasting: A Hybrid Approach; Many-Objective Evolutionary Algorithms and Hybrid Performance Metrics; Synchronization Control of Memristive Chaotic Circuits and Their Applications; Graph Embedded Total Margin Twin Support Vector Machine and Its Applications; Regularized Covariance Matrix Estimation Based on MDL Principle; An Evolution of Evolutionary Algorithms with Big Data;

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